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Urethral dysfunction in a rat model of chemically induced prostatic inflammation: potential involvement of the MRP5
Eduardo C Alexandre1,2, Nailong Cao1, Shinsuke Mizoguchi1
1Department of Urology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania.
Abstract:
Prostate inflammation (PI) is a clinical condition associated with infection and/or inflammation of the prostate. It is a common disease frequently associated to lower urinary tract (LUT) symptoms. The urethra is an understudied structure in the LUT and plays a fundamental role in the urinary cycle. Here, we proposed to evaluate the effect of PI on the urethra tissue. Male Sprague-Dawley rats were used, and PI was induced by formalin injection into the ventral lobes of the prostate. The pelvic urethra at the prostatic level was harvested for histological analysis, contraction (electrical field stimulation and phenylephrine), and relaxation (sodium nitroprusside/MK-571) experiments. Various gene targets [cytochrome c oxidase subunit 2, transforming growth factor-β1, interleukin-1β, hypoxia-inducible factor-1α, α1A-adrenoceptor, inositol 1,4,5-trisphosphate receptor type 1, voltage-gated Ca2+ channel subunit-α1D, neuronal nitric oxide synthase, soluble guanylyl cyclase, phosphodiesterase 5A, protein kinase CGMP-dependent 1, and multidrug resistance-associated protein 5 (MRP5; ATP-binding cassette subfamily C member 5)] were quantified, and cGMP levels were measured. No histological changes were detected, and functional assays revealed decreased contraction and increased relaxation of urethras from the PI group. The addition of MK-571 to functional assays increased urethral relaxation. Genes associated with inflammation were upregulated in urethras from the PI group, such as cytochrome oxidase c subunit 2, transforming growth factor-β1, interleukin-1β, and hypoxia-inducible factor-1α. We also found increased expression of L-type Ca2+ channels and the neuronal nitric oxide synthase enzyme and decreased expression of the MRP5 pump. Finally, cGMP production was enhanced in urethral tissue of PI animals. The results indicate that PI is associated with proinflammatory gene expression in the urethra without histologically evident inflammation and that PI produces a dysfunctional urethra and MRP5 pump downregulation, which results in cGMP accumulation inside the cell. These findings would help to better understand LUT dysfunctions associated with PI and the role of MRP pumps in the control of LUT function.
Insights
Prostate inflammation (PI) causes urethral dysfunction by upregulating inflammatory genes and downregulating the MRP5 pump, leading to cGMP accumulation. This study reveals PI
Area of Science:
- Urology
- Molecular Biology
- Physiology
Background:
- Prostate inflammation (PI) is a common condition linked to lower urinary tract (LUT) symptoms.
- The urethra's role in LUT function and its response to PI remains understudied.
Purpose of the Study:
- To investigate the impact of PI on urethral tissue.
- To analyze histological, functional, and molecular changes in the urethra following PI induction.
Main Methods:
- PI was induced in male Sprague-Dawley rats using formalin injection.
- Urethral tissues were analyzed for histology, contractility, relaxation, gene expression, and cGMP levels.
- Functional assays involved electrical field stimulation, phenylephrine, sodium nitroprusside, and MK-571.
Main Results:
- No histological changes were observed in urethral tissue.
- Urethras from PI rats showed decreased contraction and increased relaxation.
- Proinflammatory genes (e.g., TGF-β1, IL-1β, HIF-1α) were upregulated, while MRP5 expression decreased.
- cGMP levels were elevated in urethral tissues of PI animals.
Conclusions:
- PI induces urethral dysfunction with proinflammatory gene expression and MRP5 pump downregulation.
- Elevated cGMP levels in the urethra are associated with PI-induced dysfunction.
- Findings enhance understanding of LUT dysfunction in PI and the role of MRP pumps.

